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Fast resonant target vibrating wire scanner for photon beam.

S G Arutunian1, M Chung2, G S Harutyunyan1

  • 1Yerevan Physics Institute, Alikhanian Br. St. 2, Yerevan 0036, Armenia.

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We developed a novel resonant target vibrating wire scanner for fast beam profile measurements. This method effectively reduces background noise, improving accuracy for various particle beams.

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Area of Science:

  • Particle accelerators and beam diagnostics
  • High-energy physics instrumentation
  • Photonics and optical sensing

Background:

  • Accurate beam profile measurement is crucial for accelerator performance and research.
  • Traditional wire scanners face limitations in high-background environments.
  • Existing methods struggle with speed and precision for certain beam types.

Purpose of the Study:

  • To introduce a new wire scanner technology for enhanced beam profile measurements.
  • To address the challenge of background noise in particle beam diagnostics.
  • To develop a versatile method applicable to diverse particle beams.

Main Methods:

  • Utilizing a vibrating wire as a resonant scattering target.
  • Employing synchronous detection synchronized with wire oscillation.
  • Applying the technique to photon beam profiling using a fast photodiode.

Main Results:

  • Demonstrated fast beam profiling capabilities.
  • Achieved significant reduction in background signal interference.
  • Successfully applied to photon beam measurements.

Conclusions:

  • The resonant target vibrating wire scanner offers a robust solution for beam diagnostics.
  • The method shows potential for profiling various particle beams including neutrons, protons, electrons, and ions.
  • This innovation advances the field of particle beam measurement technology.